EWI-2 is a new component of the tetraspanin web in hepatocytes and lymphoid cells

被引:113
作者
Charrin, S
Le Naour, F
Labas, V
Billard, M
Le Caer, JP
Emile, JF
Petit, MA
Boucheix, C
Rubinstein, E
机构
[1] Hop Paul Brousse, Inst Andre Lwoff, INSERM U268, F-94807 Villejuif, France
[2] ESPCI, F-75005 Paris, France
[3] NSERM U271, F-69424 Lyon 03, France
关键词
CD9; CD81; tetraspanin; tetraspanin web;
D O I
10.1042/BJ20030343
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Several tetraspanins bind directly to a few molecular partners to form primary complexes, which might assemble through tetraspanin-tetraspanin interactions to form a network of molecular interactions, the tetraspanin web. We have produced a monoclonal antibody directed to a 63 kDa molecule (determined under non-reducing conditions) associated with CD9. This molecule was first identified by MS as a molecule with four Ig domains, EWI-2. Like the related molecule CD9P-1, EWI-2 was found to be a partner not only for CD9, but also for CD8 1, a tetraspanin required for hepatic infection by the parasite responsible for malaria. and also a putative hepatitis C virus receptor. Using chimaeric CD9/CD82 molecules, two separate regions of CD9 of 40 and 47 amino acids were demonstrated to confer the ability to interact with EWI-2. Both EWI-2 and CD9P-1 were detected in the human liver at the surface of hepatocytes and were found to associate with CD81 on freshly isolated hepatocytes. EWI-2 also co-localized with CD81 in the liver. CD9P-1 was not detected on most peripheral blood cells, whereas EWI-2 was expressed on the majority of B-, T- and natural killer cells and was not detected on rnonocytes, polynuclear cells or platelets. This distribution is identical to that of CD81. Finally, EWI-2 associated with all tetraspanins studied after lysis under conditions preserving tetraspanin-tetraspanin interactions, showing that EWI-2 is a new component of the tetraspanin web.
引用
收藏
页码:409 / 421
页数:13
相关论文
共 59 条
[1]  
ALI SA, 1995, BIOTECHNIQUES, V18, P746
[2]  
ANGELISOVA P, 1994, IMMUNOGENETICS, V39, P249
[3]  
[Anonymous], [No title captured]
[4]   A general approach to the generation of monoclonal antibodies against members of the tetraspanin superfamily using recombinant GST fusion proteins [J].
Azorsa, DO ;
Moog, S ;
Cazenave, JP ;
Lanza, F .
JOURNAL OF IMMUNOLOGICAL METHODS, 1999, 229 (1-2) :35-48
[5]   Characterization of novel complexes on the cell surface between integrins and proteins with 4 transmembrane domains (TM4 proteins) [J].
Berditchevski, F ;
Zutter, MM ;
Hemler, ME .
MOLECULAR BIOLOGY OF THE CELL, 1996, 7 (02) :193-207
[6]   Expression of the palmitoylation-deficient CD151 weakens the association of α3β1 integrin with the tetraspanin-enriched microdomains and affects integrin-dependent signaling [J].
Berditchevski, F ;
Odintsova, E ;
Sawada, S ;
Gilbert, E .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2002, 277 (40) :36991-37000
[7]  
Berditchevski F, 2001, J CELL SCI, V114, P4143
[8]   Analysis of the CD151•α3β1 integrin and CD151•tetraspanin interactions by mutagenesis. [J].
Berditchevski, F ;
Gilbert, E ;
Griffiths, MR ;
Fitter, S ;
Ashman, L ;
Jenner, SJ .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2001, 276 (44) :41165-41174
[9]   Tetraspanins [J].
Boucheix, C ;
Rubinstein, E .
CELLULAR AND MOLECULAR LIFE SCIENCES, 2001, 58 (09) :1189-1205
[10]   A NEW SET OF MONOCLONAL-ANTIBODIES AGAINST ACUTE LYMPHOBLASTIC-LEUKEMIA [J].
BOUCHEIX, C ;
PERROT, JY ;
MIRSHAHI, M ;
GIANNONI, F ;
BILLARD, M ;
BERNADOU, A ;
ROSENFELD, C .
LEUKEMIA RESEARCH, 1985, 9 (05) :597-&